A floating image-type control device, an interactive display system and a floating control method are provided. The floating image-type control device includes a rotation component and a control component. The rotation component includes a fixing portion, a bearing body and a rotation shaft. The rotation shaft is connected to the bearing body. The rotation shaft rotates relative to the fixing portion to drive the bearing body to rotate. The control component includes an image capturing unit, a zero-point calibration unit and an image analysis unit. The image capturing unit is disposed on the bearing body. The image capturing unit rotates with the bearing body and continuously captures several images. The zero-point calibration unit is used to send a zero-point signal when the bearing body rotates to a predetermined angle. The image analysis unit is used to obtain an operation signal based on the images and the zero-point signal.
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1. A floating image-type control device, comprising:
a rotation component, comprising:
a fixing portion;
a bearing body; and
a rotation shaft connected to the bearing body, wherein the rotation shaft rotates relative to the fixing portion to drive the bearing body to rotate; and
a control component, comprising:
an image capturing unit disposed on the bearing body, wherein the image capturing unit rotates with the bearing body and continuously captures a plurality of images;
a zero-point calibration unit used to send a zero-point signal when the bearing body rotates to a predetermined angle; and
an image analysis unit used to obtain an operation signal corresponding to a gesture of a user based on the images and the zero-point signal.
9. An interactive display system, comprising:
a rotation component, comprising:
a fixing portion;
a bearing body; and
a rotation shaft connected to the bearing body, wherein the rotation shaft rotates relative to the fixing portion to drive the bearing body to rotate;
a control component, comprising:
an image capturing unit disposed on the bearing body, wherein the image capturing unit rotates with the bearing body and continuously captures a plurality of images;
a zero-point calibration unit used to send a zero-point signal when the bearing body rotates to a predetermined angle; and
an image analysis unit used to obtain an operation signal corresponding to a gesture of a user based on the images and the zero-point signal;
a display component connected to the bearing body, wherein the display component rotates with the bearing body.
2. The floating image-type control device according to
a signal emitter disposed on the fixing portion and used to emit a sensing signal; and
a signal receiver disposed on the fixing portion, wherein when the bearing body rotates to the predetermined angle, the signal receiver receives the sensing signal reflected from the bearing body and further outputs the zero-point signal based on the received sensing signal.
3. The floating image-type control device according to
a signal emitter disposed on the bearing body and used to emit a sensing signal; and
a signal receiver disposed on the fixing portion, wherein when the bearing body rotates to the predetermined angle, the signal receiver receives the sensing signal and further outputs the zero-point signal based on the received sensing signal.
4. The floating image-type control device according to
5. The floating image-type control device according to
a plate connected to the rotation shaft; and
a side panel connected to the plate, wherein the side panel is substantially perpendicular to the plate, and the image capturing unit is disposed on the side panel.
6. The floating image-type control device according to
7. The floating image-type control device according to
8. The floating image-type control device according to
10. The interactive display system according to
a signal emitter disposed on the fixing portion and used to emit a sensing signal; and
a signal receiver disposed on the fixing portion, wherein when the bearing body rotates to the predetermined angle, the signal receiver receives the sensing signal reflected from the bearing body and further outputs the zero-point signal based on the received sensing signal.
11. The interactive display system according to
a signal emitter disposed on the bearing body and used to emit a sensing signal; and
a signal receiver disposed on the fixing portion, wherein when the bearing body rotates to the predetermined angle, the signal receiver receives the sensing signal and further outputs the zero-point signal based on the received sensing signal.
12. The interactive display system according to
13. The interactive display system according to
a plate connected to the rotation shaft; and
a side panel connected to the plate, wherein the side panel is substantially perpendicular to the plate, and the image capturing unit is disposed on the side panel.
14. The interactive display system according to
15. The interactive display system according to
16. The interactive display system according to
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This application claims the benefit of Taiwan application Serial No. 108148593, filed Dec. 31, 2019, the subject matter of which is incorporated herein by reference.
The invention relates in general to a control device, display system and the control method, and more particularly to a floating image-type control device, an interactive display system and a floating control method.
Along with the advance in the display technology, holographic display dispensing with the use of glasses has long been a dream product to many people. The goal is to provide a display which does not occupy space or occupies the least amount of space. The aerial display and the floating display are relevant technologies of holographic display.
The aerial display includes reflective type, refractive type, volumetric type, and curtain type. The volumetric type display produces visual residues through high speed. Both the reflective type display and the refractive type display form images through the use of optical path which allows the projection contents to be displayed on a second plane of the space. The curtain type display scatters the projection contents to the viewers' eyes through the disturbed particles in the air, the water, or the mist.
Currently, the above displays can be operated through an auxiliary tool such as mouse, keyboard, or joystick. However, the operation through an auxiliary tool still cannot provide the user with intuitive sensations. Therefore, it has become a prominent task for the industries to provide a floating control technology dispensing with the use of auxiliary control tool.
The invention is directed to a floating image-type control device, an interactive display system and a floating control method capable of completing a floating operation through the design of a rotation component and a control component. Furthermore, the rotation component and the control component can be combined with a display component to form an interactive display system, with allows the user to perform an intuitive operation.
According to a first aspect of the present invention, a floating image-type control device is provided. The floating image-type control device includes a rotation component and a control component. The rotation component includes a fixing portion, a bearing body and a rotation shaft. The rotation shaft is connected to the bearing body. The rotation shaft rotates relative to the fixing portion to drive the bearing body to rotate. The control component includes an image capturing unit, a zero-point calibration unit and an image analysis unit. The image capturing unit is disposed on the bearing body. The image capturing unit rotates with the bearing body and continuously captures several images. The zero-point calibration unit is used to send a zero-point signal when the bearing body rotates to a predetermined angle. The image analysis unit is used to obtain an operation signal based on the images and the zero-point signal.
According to a second aspect of the present invention, an interactive display system is provided. The interactive display system includes a rotation component, a control component and a display component. The rotation component includes a fixing portion, a bearing body and a rotation shaft. The rotation shaft is connected to the bearing body. The rotation shaft rotates relative to the fixing portion to drive the bearing body to rotate. The control component includes an image capturing unit, a zero-point calibration unit and an image analysis unit. The image capturing unit is disposed on the bearing body. The image capturing unit rotates with the bearing body and continuously captures several images. The zero-point calibration unit is used to send a zero-point signal when the bearing body rotates to a predetermined angle. The image analysis unit is used to obtain an operation signal based on the images and the zero-point signal. The display component is connected to the bearing body and rotates with the bearing body.
According to a third aspect of the present invention, a floating control method is provided. The floating control method includes the following steps. An image capturing unit is rotated. Several images are continuously captured by the image capturing unit. A zero-point signal is received. An operation signal is obtained based on the images and the zero-point signal.
The above and other aspects of the invention will become better understood with regard to the following detailed description of the preferred but non-limiting embodiment(s). The following description is made with reference to the accompanying drawings.
Refer to
The control component 120 includes an image capturing unit 121, a zero-point calibration unit 122 and an image analysis unit 123. The image capturing unit 121 and the image analysis unit 123 can be realized by such as a circuit, a chip, a circuit board, array code or storage device for storing code. The image capturing unit 121 is disposed on the bearing body 112. The image capturing unit 121 rotates with the bearing body 112 and continuously captures several images IM. As indicated in
The zero-point calibration unit 122 is used to emit a zero-point signal S0 when the bearing body 112 rotates to a predetermined angle. That is, the zero-point calibration unit 122 can send the zero-point signal S0 every time when the bearing body 112 rotates a circle and reaches the predetermined angle. The zero-point signal S0 can be used as a mark which helps the image analysis unit 123 to identify the corresponding angle of each image IM. When the user waves his/her palm or finger(s) in front of the image capturing unit 121, the image analysis unit 123 can analyze the gesture from the continuously captured images IM.
Thus, the image analysis unit 123 can obtain an operation signal S1 corresponding to the gesture based on the images IM and the zero-point signal S0.
The display component 130 can be formed of a number of light-emitting diodes 131. The display component 130 is connected to the bearing body 112. The light-emitting diodes 131 of the display component 130 rotate with the bearing body 112. When the bearing body 112 rotates at a high speed, the user will see the light-emitting diodes 131 filling the rotation range of the bearing body 112 due to visual persistence.
Through the interactive display system 1000 of
In another embodiment, the rotation component 110 and the control component 120 can be combined to form a floating image-type control device. That is, in the absence of the display component 130, a floating image-cut operation still can be performed by the rotation component 110 and the control component 120 and the floating image-cut operation still is applicable to situations such as making a presentation or operating an elevator panel.
Referring to
Referring to
Even when the user accidentally touches the bearing body 112 and changes the rotation speed of the bearing body 112, the zero-point signal S0 is still emitted at the predetermined angle, therefore each image IM still corresponds to the correct angle. Thus, the user's floating gesture can be precisely identified. Here below, the operations of each component are described with an accompanying flowchart.
Referring to
Then, the method proceeds to step S120, several images IM are continuously captured by the image capturing unit 121. Since the image capturing unit 121 can capture images with fixed resolution, size and brightness, the required time for capturing each image IM is substantially identical.
After that, the method proceeds to step S130, a zero-point signal S0 is received by the zero-point calibration unit 122.
Then, the method proceeds to step S140, the operation signal S1 is obtained by the image analysis unit 123 based on the images IM and the zero-point signal S0. In the present step, the image analysis unit 123 calculates the corresponding angle of each image IM based on the zero-point signal S0. Then, based on the angle, the image analysis unit 123 can perform suitable treatments, such as rotation, clipping, stitching and selection, to facilitate the judgement of gesture. After the image analysis unit 123 analyzes the gesture, the operation signal S1 corresponding to the gesture can be obtained through a look-up table (such as turn a page over, slide on the page or rotate an object).
Apart from the above implementations, the bearing body 112 and the image capturing unit 121 also can have other implementations. Refer to FIGS. 5A to 5B.
Refer to
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Referring to
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Through the above embodiments, the user can perform am intuitive operation to an interactive display system. During the intuitive operation, the user does not need to touch the bearing body 112 or the display component 130. Instead, the user only needs to wave his/her palm or finger(s) in the air. Besides, in the absence of the display component 130, a floating image-cut operation still can be performed by the rotation component and the control component.
While the invention has been described by way of example and in terms of the preferred embodiment(s), it is to be understood that the invention is not limited thereto. On the contrary, it is intended to cover various modifications and similar arrangements and procedures, and the scope of the appended claims therefore should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements and procedures.
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